• Chinese Optics Letters
  • Vol. 19, Issue 12, 121701 (2021)
Cheng Jin1, Ruheng Shi1, Chi Liu1, and Lingjie Kong1、2、*
Author Affiliations
  • 1State Key Laboratory of Precision Measurement Technology and Instruments, Department of Precision Instrument, Tsinghua University, Beijing 100084, China
  • 2IDG/McGovern Institute for Brain Research, Tsinghua University, Beijing 100084, China
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    DOI: 10.3788/COL202119.121701 Cite this Article Set citation alerts
    Cheng Jin, Ruheng Shi, Chi Liu, Lingjie Kong. Recognizing local artifacts in two-photon imaging of dendrites beneath blood vessels in vivo[J]. Chinese Optics Letters, 2021, 19(12): 121701 Copy Citation Text show less
    References

    [1] D. Wang, J. Xia. Optics based biomedical imaging: principles and applications. J. Appl. Phys., 125, 191101(2019).

    [2] K. Akassoglou, M. Merlini, V. A. Rafalski, R. Real, L. Liang, Y. Jin, S. E. Dougherty, V. D. Paola, D. J. Linden, T. Misgeld, B. Zheng. In vivo imaging of CNS injury and disease. J. Neurosci., 37, 10808(2017).

    [3] Y. Ozeki. Molecular vibrational imaging by stimulated Raman scattering microscopy: principles and applications. Chin. Opt. Lett., 18, 121702(2020).

    [4] L. Zhu, Y. Wang, Y. Yuan, H. Zhou, Y. Zhao, Z. Ma. Spectral domain optical coherence tomography with sub-micrometer sensitivity for measurement of central corneal thickness. Chin. Opt. Lett., 17, 041701(2019).

    [5] G. Sancataldo, L. Silvestri, A. L. A. Mascaro, L. Sacconi, F. S. Pavone. Advanced fluorescence microscopy for in vivo imaging of neuronal activity. Optica, 6, 758(2019).

    [6] B. A. Wilt, L. D. Burns, E. T. Wei Ho, K. K. Ghosh, E. A. Mukamel, M. J. Schnitzer. Advances in light microscopy for neuroscience. Annu. Rev. Neurosci., 32, 435(2009).

    [7] I. Y. Koh, W. B. Lindquist, K. Zito, E. A. Nimchinsky, K. Svoboda. An image analysis algorithm for dendritic spines. Neural. Comput., 14, 1283(2002).

    [8] M. U. Ghani, F. Mesadi, S. D. Kanık, A. O. Argunsah, A. F. Hobbiss, I. Israely, D. Unay, T. Tasdizen, M. Cetin. Dendritic spine classification using shape and appearance features based on two-photon microscopy. J. Neurosci. Methods, 279, 13(2017).

    [9] M. Li, F. Liu, H. Jiang, T. S. Lee, S. Tang. Long-term two-photon imaging in awake macaque monkey. Neuron, 93, 1049(2017).

    [10] Z. Gu, X. Wang, J. Wang, F. Fan, S. Chang. Sidelobe suppression and axial resolution enhancement in 4pi microscopy with higher-order radially polarized Laguerre–Gaussian beams using subtractive imaging. Chin. Opt. Lett., 17, 121103(2019).

    [11] J. Zeng, P. Mahou, M.-C. Schanne-Klein, E. Beaurepaire, D. Débarre. 3D resolved mapping of optical aberrations in thick tissues. Biomed. Opt. Express, 3, 1898(2012).

    [12] M. J. Booth. Adaptive optics in microscopy. Philos. Trans. A Math. Phys. Eng. Sci., 365, 2829(2007).

    [13] F. Helmchen, W. Denk. Deep tissue two-photon microscopy. Nat. Methods, 2, 932(2005).

    [14] W. Denk, J. H. Strickler, W. W. Webb. Two-photon laser scanning fluorescence microscopy. Science, 248, 73(1990).

    [15] K. Svoboda, R. Yasuda. Principles of two-photon excitation microscopy and its applications to neuroscience. Neuron, 50, 823(2006).

    [16] C. Jin, L. Kong, H. Dana, H. Xie, L. Cao, G. Jin, Q. Dai. Advances in point spread function engineering for functional imaging of neural circuits in vivo. J. Phys. D, 53, 383001(2020).

    [17] Y. Liu, P. Lai, C. Ma, X. Xu, A. A. Grabar, L. V. Wang. Optical focusing deep inside dynamic scattering media with near-infrared time-reversed ultrasonically encoded (TRUE) light. Nat. Commun., 6, 5904(2015).

    [18] R. Horstmeyer, H. Ruan, C. Yang. Guidestar-assisted wavefront-shaping methods for focusing light into biological tissue. Nat. Photon., 9, 563(2015).

    [19] N. Ji. Adaptive optical fluorescence microscopy. Nat. Methods, 14, 374(2017).

    [20] L. Kong, M. Cui. In vivo deep tissue imaging via iterative multiphoton adaptive compensation technique. IEEE J. Sel. Top. Quantum Electron., 22, 40(2016).

    [21] J.-H. Park, W. Sun, M. Cui. High-resolution in vivo imaging of mouse brain through the intact skull. Proc. Natl. Acad. Sci. U.S.A., 112, 9236(2015).

    [22] J.-H. Park, L. Kong, Y. Zhou, M. Cui. Large-field-of-view imaging by multi-pupil adaptive optics. Nat. Methods, 14, 581(2017).

    [23] P. T. So, C. Y. Dong, B. R. Masters, K. M. Berland. Two-photon excitation fluorescence microscopy. Annu. Rev. Biomed. Eng., 2, 399(2000).

    [24] B. Richards, E. Wolf. Electromagnetic diffraction in optical systems. II. Structure of the image field in an aplanatic system. Proc. Roy. Soc. A, 253, 358(1959).

    [25] Q. Li. Optimization of point spread function of a high numerical aperture objective lens: application to high resolution optical imaging and fabrication(2014).

    [26] M. Born, E. Wolf. Principles of Optics: Electromagnetic Theory of Propagation, Interference and Diffraction of Light(1999).

    [27] M. A. Neil, M. J. Booth, T. Wilson. New modal wave-front sensor: a theoretical analysis. J. Opt. Soc. Am. A, 17, 1098(2000).

    [28] S. L. Jacques. Optical properties of biological tissues: a review. Phys. Med. Biol., 58, R37(2013).

    [29] B. Huang, W. Wang, M. Bates, X. Zhuang. Three-dimensional super-resolution imaging by stochastic optical reconstruction microscopy. Science, 319, 810(2008).

    [30] M. Tobias, B. A. Gutwein, A. Rohrbach. Light-sheet microscopy in a glass capillary: feedback holographic control for illumination beam correction. Opt. Lett., 42, 350(2017).

    [31] R. Turcotte, Y. Liang, N. Ji. Adaptive optical versus spherical aberration corrections for in vivo brain imaging. Biomed. Opt. Express, 8, 3891(2017).

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    Cheng Jin, Ruheng Shi, Chi Liu, Lingjie Kong. Recognizing local artifacts in two-photon imaging of dendrites beneath blood vessels in vivo[J]. Chinese Optics Letters, 2021, 19(12): 121701
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